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Machine learning the Kondo entanglement cloud from local measurements

Research output: Contribution to journalArticleScientificpeer-review

4 Citations (Scopus)
37 Downloads (Pure)

Abstract

A quantum coherent screening cloud around a magnetic impurity in metallic systems is the hallmark of the antiferromagnetic Kondo effect. Despite the central role of the Kondo effect in quantum materials, the structure of quantum correlations of the screening cloud has defied direct observations. In this work, we introduce a machine-learning algorithm that allows one to spatially map the entangled electronic modes in the vicinity of the impurity site from experimentally accessible data. We demonstrate that local correlators allow reconstruction of the local many-body correlation entropy in real space in a double Kondo system with overlapping entanglement clouds. Our machine-learning methodology allows bypassing the typical requirement of measuring long-range nonlocal correlators with conventional methods. We show that our machine-learning algorithm is transferable between different Kondo system sizes, and we show its robustness in the presence of noisy correlators. Our work establishes the potential machine-learning methods to map many-body entanglement from real-space measurements.

Original languageEnglish
Article number195125
JournalPhysical Review B
Volume109
Issue number19
DOIs
Publication statusPublished - 15 May 2024
Publication typeA1 Journal article-refereed

Funding

F.A. acknowledges the financial support from the Magnus Ehrnrooth Foundation. T.O. acknowledges the Academy of Finland Project No. 331094 for support. J.L.L. acknowledges the financial support from the Academy of Finland Projects No. 331342 and No. 358088 and the Jane and Aatos Erkko Foundation. F.A. and J.L.L. acknowledge the computational resources provided by the Aalto Science-IT project.

FundersFunder number
Magnus Ehrnroothin Säätiö
Jane ja Aatos Erkon Säätiö
Strategic Research Council at the Research Council of Finland331094, 358088, 331342

    Publication forum classification

    • Publication forum level 2

    ASJC Scopus subject areas

    • Electronic, Optical and Magnetic Materials
    • Condensed Matter Physics

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